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在体内,通过激活感觉神经中不同的 G 蛋白信号通路,磷脂酰肌醇磷酸在伤害感受敏化中发挥新的生物学作用。

A novel biological role for the phospholipid lysophosphatidylinositol in nociceptive sensitization via activation of diverse G-protein signalling pathways in sensory nerves in vivo.

机构信息

Institute of Pharmacology, Heidelberg University, Heidelberg 69120, Germany Institute for Anatomy and Cell Biology, Heidelberg University, Heidelberg 69120, Germany Max-Planck Institute for Heart and Lung Research, Bad Nauheim 61231, Germany Department of Screening and Compound Profiling, Molecular Discovery Research, GlaxoSmithKline, Hertfordshire, UK.

出版信息

Pain. 2013 Dec;154(12):2801-2812. doi: 10.1016/j.pain.2013.08.019. Epub 2013 Aug 22.

DOI:10.1016/j.pain.2013.08.019
PMID:23973358
Abstract

The rich diversity of lipids and the specific signalling pathways they recruit provides tremendous scope for modulation of biological functions. Lysophosphatidylinositol (LPI) is emerging as a key modulator of cell proliferation, migration, and function, and holds important pathophysiological implications due to its high levels in diseased tissues, such as in cancer. Here we report a novel role for LPI in sensitization of peripheral sensory neurons, which was evident as exaggerated sensitivity to painful and innocuous pressure. Histopathological analyses indicated lack of involvement of myelin pathology and immune cell recruitment by LPI. Using pharmacological and conditional genetic tools in mice, we delineated receptor-mediated from non-receptor-mediated effects of LPI and we observed that GPR55, which functions as an LPI receptor when heterologously expressed in mammalian cells, only partially mediates LPI-induced actions in the context of pain sensitization in vivo; we demonstrate that, in vivo, LPI functions by activating Gα(13) as well as Gα(q/11) arms of G-protein signalling in sensory neurons. This study thus reports a novel pathophysiological function for LPI and elucidates underlying molecular mechanisms.

摘要

脂质的丰富多样性和它们所招募的特定信号通路为调节生物功能提供了巨大的空间。溶血磷脂酰肌醇(LPI)作为细胞增殖、迁移和功能的关键调节剂而出现,由于其在疾病组织(如癌症)中的高水平,具有重要的病理生理意义。在这里,我们报告了 LPI 在敏化周围感觉神经元中的一个新作用,这表现在对疼痛和无害压力的敏感性明显增加。组织病理学分析表明 LPI 不涉及髓鞘病理学和免疫细胞募集。我们使用药理学和条件性遗传工具在小鼠中描绘了 LPI 的受体介导和非受体介导作用,我们观察到 GPR55 在异源表达于哺乳动物细胞中时作为 LPI 受体起作用,但仅部分介导体内痛觉敏化中 LPI 诱导的作用;我们证明,在体内,LPI 通过激活感觉神经元中的 Gα(13)以及 G 蛋白信号的 Gα(q/11)臂起作用。因此,本研究报告了 LPI 的一个新的病理生理学功能,并阐明了潜在的分子机制。

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